A color display configured to convert RGB image data for display on advanced color electronic paper.
The system converts RGB data to electrophoretic display data using tetrahedron decomposition and dithering, enabling eight primary colors per pixel on advanced color electronic paper, solving full-color representation and sedimentation issues.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- E INK CORP
- Filing Date
- 2023-04-25
- Publication Date
- 2026-04-17
AI Technical Summary
Existing electrophoretic displays face challenges in achieving full-color representation and maintaining image quality due to particle sedimentation and the need for complex voltage control, especially in gas-based media, and lack a direct mapping method for converting RGB image data to the unique color space of advanced color electronic paper.
A system for converting RGB image data into electrophoretic display data using tetrahedron decomposition and dithering, incorporating a lookup table to map RGB colors to the ACeP device space, enabling the generation of eight primary colors per pixel with precise voltage control and particle positioning.
Enables high-quality full-color rendering on advanced color electronic paper by accurately mapping RGB data to the electrophoretic display space, maintaining neutrality and reducing granularity issues, while addressing particle sedimentation concerns.
Smart Images

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Abstract
Description
[Technical Field]
[0001] (Related applications) This application claims priority to U.S. Provisional Patent Application No. 63 / 335,677, filed on 27 April 2022. All patents and publications disclosed herein are incorporated together by reference. [Background technology]
[0002] Electrophoretic displays (EPDs) change color by modifying the position of charged colored particles on a light-transmitting viewing surface. Such electrophoretic displays are typically referred to as "electronic paper" or "e-paper" because the resulting display has high contrast and is sunlight-readable, much like ink on paper. Electrophoretic displays have enjoyed widespread adoption in e-readers such as Amazon Kindle® because they provide a book-like reading experience, use less power, and allow users to carry libraries of hundreds of books in a lightweight, handheld device.
[0003] For many years, electrophoretic displays have contained only two types of charged colored particles, namely black and white (to be clear, “color” as used herein includes black and white). White particles are often light-scattering and include, for example, titanium dioxide, while black particles are absorptive across the visible spectrum and may include carbon black or absorptive metal oxides such as copper chromite. In its simplest sense, a black and white electrophoretic display requires only a light-transmitting electrode on the viewing surface, a back electrode, and an electrophoretic medium containing oppositely charged white and black particles. When a voltage of one polarity is provided, white particles move to the viewing surface, and when a voltage of the opposite polarity is provided, black particles move to the viewing surface. If the back electrode contains controllable regions (pixels), i.e., an active matrix of segmented electrodes or pixel electrodes controlled by transistors, a pattern can be fabricated to appear electronically on the viewing surface. This pattern could be, for example, text for a book.
[0004] More recently, a variety of color options, including three-color displays (black, white, red, and black, white, yellow) and four-color displays (black, white, red, yellow), have become commercially available for electrophoretic displays. Similar to the operation of a monochrome electrophoretic display, an electrophoretic display with three or four reflective pigments operates similarly to a simple monochrome display, as the desired color particles are driven toward the viewing surface. While this driving scheme is far more complex than that of a monochrome-only display, the optical properties of the particles are ultimately identical.
[0005] Advanced Color Electronic Paper (ACeP®) also contains four particles, but the cyan, yellow, and magenta particles are subtractive rather than reflective, thereby enabling thousands of colors to be generated in each pixel. This color process is functionally equivalent to the printing method that has long been used in offset printing and inkjet printers. A given color is produced by using the correct ratio of cyan, yellow, and magenta on a bright white paper background. In the case of ACeP, the relative positions of the cyan, yellow, magenta, and white particles to the viewing surface will determine the color in each pixel. While this type of electrophoretic display enables thousands of colors in each pixel, it is crucial to carefully control the position of each pigment (50-500 nanometers in size) within a working space of approximately 10-20 microns in thickness. Obviously, variations in the position of the pigments will result in the display of the wrong color in a given pixel. Therefore, precise voltage control is required for such a system. Further details of this system are available in the following U.S. Patents, namely U.S. Patents 9,361,836, 9,921,451, 10,276,109, 10,353,266, 10,467,984, and 10,593,272, all of which are incorporated as a whole by reference.
[0006] The present invention relates to a color electrophoretic display, and more specifically, to an electrophoretic display capable of rendering more than two colors using a single layer of electrophoretic material comprising, but not exclusively, multiple colored particles, for example, white, cyan, yellow, and magenta particles. In some cases, two of the particles may be positively charged and two particles may be uncharged. In some cases, three of the particles may be positively charged and one particle may be uncharged. In some cases, one positively charged particle may have a thick polymer shell and one uncharged particle may have a thick polymer shell.
[0007] The term “gray state” is used herein in its conventional sense in imaging technology and refers to an intermediate state between the optical states of two extreme pixels, and does not necessarily imply a black / white transition between these two extreme states. For example, some of E INK’s patents and published applications referenced below describe electrophoretic displays in which the extreme states are white and dark blue, so that the intermediate gray state is actually light blue. In fact, as already described, the change in optical state may not be a change in color at all. The term “black and white” may be used herein hereafter to refer to two extreme optical states of a display and should generally be understood to include extreme optical states that are not strictly black and white, such as the aforementioned white and dark blue states.
[0008] The terms “bistable” and “bistable” are used herein to refer to a display having a display element having a first and second display state having at least one different optical property, thereby, after any given element is driven with a finite-duration addressing pulse to exhibit either the first or second display state, and after the addressing pulse has terminated, the state will persist for at least several times, e.g., at least four times, the minimum duration of the addressing pulse required to change the state of the display element. U.S. Patent No. 7,170,670 shows that several grayscale-compatible particle-based electrophoretic displays are stable not only in their extreme black and white state but also in their intermediate gray state, and the same is true for several other types of electro-optic displays. These types of displays are more appropriately called “multistable” rather than “bistable,” but for convenience, the term “bistable” may be used herein to encompass both bistable and multistable displays.
[0009] The term "impulse," when used to refer to the driving of an electrophoretic display, is used herein to refer to the integral of the applied voltage over time during the period in which the display is driven.
[0010] Particles that absorb, scatter, or reflect light in a broadband or selected wavelength are referred to herein as colored or pigmented particles. Various materials other than pigments (in the strict sense of the term meaning insoluble coloring materials) that absorb or reflect light, such as dyes or photonic crystals, may also be used in the electrophoretic media and displays of the present invention.
[0011] Particle-based electrophoretic displays have been the subject of vigorous research and development for many years. In such displays, multiple charged particles (sometimes also called pigment particles) move through a fluid under the influence of an electric field. Compared to liquid crystal displays, electrophoretic displays can have attributes such as good brightness and contrast, wide viewing angles, state bistability, and low power consumption. Nevertheless, problems associated with the long-term image quality of these displays have hindered their widespread use. For example, the particles that make up electrophoretic displays tend to settle, resulting in a poor usable lifespan for these displays.
[0012] As described above, electrophoretic media require the presence of a fluid. In most prior art electrophoretic media, this fluid is a liquid, but electrophoretic media can also be produced using a gaseous fluid. See, for example, Kitamura, T., et al., Electrical toner movement for electronic paper-like display, IDW Japan, 2001, Paper HCS1-1 and Yamaguchi, Y,. et a,l. Toner display using insulative particles charged triboelectrically, IDW Japan, 2001, Paper AMD4-4. Also see U.S. Patents 7,321,459 and 7,236,291. Such gas-based electrophoretic media are considered susceptible to the same types of problems as liquid-based electrophoretic media due to particle sedimentation, for example, when used in a sign where the medium is positioned in a vertical plane and the medium is oriented in a way that allows such sedimentation. In fact, particle sedimentation is considered a more serious problem in gas-based electrophoretic media than in liquid-based electrophoretic media, due to the lower viscosity of gaseous suspension fluids compared to the viscosity of liquids, which allows for faster sedimentation of electrophoretic particles.
[0013] Numerous patents and applications, assigned to or filed in the name of the Massachusetts Institute of Technology (MIT) and E Ink Corporation, describe various techniques used in encapsulated electrophoretic media and other electro-optical media. Such encapsulated media comprise numerous small capsules, each comprising an inner phase containing electrophoretically mobile particles in a fluid medium, and a capsule wall surrounding the inner phase. Typically, the capsules themselves form a coherent layer, held within a polymer binder and positioned between two electrodes. The techniques described in these patents and applications include: (a) Electrophoretic particles, fluids, and fluid additives (see, e.g., U.S. Pat. Nos. 7,002,728 and 7,679,814) (b) Capsules, binders, and encapsulation processes (see, e.g., U.S. Pat. Nos. 6,922,276 and 7,411,719) (c) Microcell structures, wall materials, and methods of forming microcells (see, e.g., U.S. Pat. Nos. 7,072,095 and 9,279,906) (d) Methods for filling and sealing microcells (see, e.g., U.S. Pat. Nos. 7,144,942 and 7,715,088) (e) Films and subassemblies containing electro-optical materials (see, e.g., U.S. Pat. Nos. 6,982,178 and 7,839,564) (f) Backplanes, adhesive layers, other auxiliary layers, and methods used in displays (see, e.g., U.S. Pat. Nos. 7,116,318 and 7,535,624) (g) Color formation and color adjustment
Chem.
Chem.
Chem.
[0014] Many of the aforementioned patents and applications recognize that the walls surrounding discrete microcapsules in an encapsulated electrophoretic medium can be replaced by a continuous phase, thus creating so-called "polymer dispersed electrophoretic displays" in which the electrophoretic medium comprises a plurality of discrete droplets of an electrophoretic fluid and a continuous phase of a polymeric material, and that discrete droplets of the electrophoretic fluid within such polymer dispersed electrophoretic displays can be considered capsules or microcapsules even when no discrete capsule membrane is associated with each individual droplet. See, for example, U.S. Patent No. 6,866,760. Accordingly, for the purposes of this application, such polymer dispersed electrophoretic media are considered a subclass of encapsulated electrophoretic media.
[0015] A related type of electrophoretic display is the so-called "microcell electrophoretic display". In a microcell electrophoretic display, charged particles and fluid are not encapsulated within microcapsules, but instead are retained within a plurality of cavities formed within a carrier medium, typically a polymeric film. See, for example, U.S. Patents Nos. 6,672,921 and 6,788,449.
[0016] Electrophoretic media are often impermeable (for example, in many electrophoretic media, the particles substantially block the transmission of visible light through the display) and can operate in reflective mode. However, many electrophoretic displays can be manufactured to operate in a so-called "shielding mode," where one display state is substantially impermeable and the other is light-transmitting. See, for example, U.S. Patents 5,872,552, 6,130,774, 6,144,361, 6,172,798, 6,271,823, 6,225,971, and 6,184,856. Dielectric displays, similar to electrophoretic displays but relying on variations in electric field intensity, can operate in a similar mode. See, for example, U.S. Patent 4,418,346. Other types of electro-optical displays may also be capable of operating in shielding mode. Electro-optical media operating in shielding mode can be used in multilayer structures for full-color displays. In such a structure, at least one layer adjacent to the viewing surface of the display operates in shielding mode, exposing or concealing a second layer located further away from the viewing surface.
[0017] Encapsulated electrophoretic displays typically do not suffer from the clustering and sedimentation failure modes of conventional electrophoretic devices and offer further advantages such as the ability to print or coat displays on a wide variety of flexible and rigid substrates. (The use of the term “printing” is intended to include, but is not limited to, all forms of printing and coating, including pre-metering coatings such as patch die coating, slot or extrusion coating, slide or cascade coating, curtain coating; roll coatings such as knife over-roll coating, forward and reverse roll coating; gravure coating; immersion coating; spray coating; meniscus coating; spin coating; brush coating; air knife coating; silkscreen printing processes; electrostatic printing processes; thermal printing processes; inkjet printing processes; electrophoretic deposition (see U.S. Patent No. 7,339,715); and other similar techniques.) Therefore, the resulting displays can be flexible. Furthermore, since the display medium can be printed (using various methods), the displays themselves can be manufactured inexpensively.
[0018] As shown above, the simplest prior art electrophoretic media essentially display only two colors. Such electrophoretic media use either a single type of electrophoretic particle having a first color in a colored fluid having a second distinct color (in which case the first color is displayed when the particle is adjacent to the visible surface of the display, and the second color is displayed when the particle is separated from the visible surface), or first and second types of electrophoretic particles having different first and second colors in an uncolored fluid (in which case the first color is displayed when the first type of particle is adjacent to the visible surface of the display, and the second color is displayed when the second type of particle is adjacent to the visible surface). Typically, the two colors are black and white. If a full-color display is desired, a color filter array may be deposited over the visible surface of a monochrome (black and white) display.
[0019] Displays with color filter arrays create color stimuli by relying on area sharing and color mixing. The available display area is shared among three or four primary colors, such as red / green / blue (RGB) or red / green / blue / white (RGBW), and the filters can be arranged in a one-dimensional (striped) or two-dimensional (2x2) repeating pattern. Other options for primary colors or more than three primary colors are also known in the art. Three (for RGB displays) or four (for RGBW displays) subpixels are selected so as to be small enough that, at the intended viewing distance, they visually blend together into a single pixel with a uniform color stimulus ("color mixing"). An inherent disadvantage of area sharing is that the colorants are always present, and the color can only be modulated by switching the corresponding pixels of the underlying monochrome display to white or black (switching the corresponding primary colors on or off). For example, in an ideal RGBW display, the primary colors red, green, blue, and white each occupy one-quarter of the display area (one of four subpixels), the white subpixel is as bright as the white of the underlying monochrome display, but each colored subpixel is no brighter than one-third of the white of the monochrome display. The brightness of white as a whole shown by the display cannot exceed half the brightness of the white subpixel (the white area of the display is generated by displaying one of each four white subpixels plus each colored subpixel in its colored form equivalent to one-third of the white subpixel; therefore, the three combined colored subpixels do not contribute more than one white subpixel). The brightness and saturation of colors are reduced by area sharing with color pixels that switch to black. Area sharing is particularly problematic when mixing yellow, as it is brighter than any other color of equal brightness, and saturated yellow is roughly as bright as white. Switching from blue pixels (one-quarter of the display area) to black significantly dims yellow.
[0020] A commonly used system for quantifying the color characteristics of a display, which includes both luminance and hue, is the CIELAB system, which, under the CIE standard illuminant D65 (accompanied by, for example, a color temperature of 6,500 K), corresponds to the colors displayed by a typical color reflective display device and assigns color coordinate values (i.e., L * , a * , b * ). L * represents the lightness from black to white on a scale of 0 to 100, while a * and b * represent chromaticity without any specific numerical limits. Negative a * corresponds to green, positive a * corresponds to red, negative b * corresponds to blue, and positive b * corresponds to yellow. L * can be converted to reflectance using the following formula, i.e., L * = 116(R / R0)1 / 3 - 16, where R is the reflectance and R0 is the standard reflectance value.
[0021] U.S. Patent Nos. 8,576,476 and 8,797,634 describe a multicolor electrophoretic display having a single backplane with individually addressable pixel electrodes and a common optically transmissive front electrode. The common optically transmissive front electrode is also known as the upper electrode. A plurality of electrophoretic layers are disposed between the backplane and the front electrode. The displays described in these applications are capable of rendering any of the primary colors (red, green, blue, cyan, magenta, yellow, white, and black) at any pixel location. However, there are disadvantages associated with the use of a plurality of electrophoretic layers located between a single set of addressing electrodes. The electric field shielded by the particles within a particular layer is lower than would be applicable for a single electrophoretic layer addressed using the same voltage. In addition, optical losses (e.g., caused by light scattering or unwanted absorption) within the electrophoretic layer closest to the viewing surface can affect the appearance of the image formed within the underlying electrophoretic layer.
[0022] Attempts have been made to provide full-color electrophoretic displays using a single electrophoretic layer. For example, U.S. Patent No. 8,917,439 describes a color display comprising an electrophoretic fluid containing one or two types of pigment particles dispersed in a clear and colorless or colored solvent, wherein the electrophoretic fluid is positioned between a common electrode and a number of pixels or driving electrodes. The driving electrodes are arranged to expose a background layer. U.S. Patent No. 9,116,412 describes a method for driving a display cell filled with an electrophoretic fluid containing two types of charged particles having opposite charge polarities and being two contrast colors. The two types of pigment particles are dispersed in a colored solvent, or in a solvent with uncharged or weakly charged colored particles dispersed therein. The method includes the step of driving the display cell by applying a driving voltage which is about 1 to about 20% of the total driving voltage to display the color of the solvent or the color of the uncharged or weakly charged colored particles. U.S. Patents 8,717,664 and 8,964,282 describe electrophoretic fluids and methods for driving electrophoretic displays. The fluid comprises first, second, and third types of pigment particles, all dispersed in a solvent or solvent mixture. The first and second types of pigment particles have opposite charge polarities, and the third type of pigment particles have a charge level that is less than 50% of the charge level of the first or second type. The three types of pigment particles have different levels of threshold voltage, or different levels of mobility, or both. None of these patent applications disclose a full-color display in the sense that the term is used below, which is capable of achieving at least eight independent colors (white, red, green, blue, cyan, yellow, magenta, and black). As previously stated, the color gamut (color space) resulting from electrophoretic display systems such as high-color electronic paper can be variable depending on environmental conditions and the selected driving waveform. For example, see U.S. Patent No. 10,467,984 (which is incorporated as a whole by reference).
[0023] The vast number of electronic color images worldwide are generally formatted within the RGB color space, corresponding to red, green, and blue subpixels, used in liquid crystal displays (LCDs), light-emitting diode (LED) displays, or cathode ray tube (CRT) displays. The common format is 8-bit RGB, which assigns red, green, and blue subpixel values to each pixel in an image as three sets of numbers, each ranging from 0 to 255. Therefore, a standard RGB image file consists of sets of numbers corresponding to pixels in the image. When those color levels are provided to the assigned pixels, the image appears on the display. The next image file, corresponding to the next frame of a new photograph or video, has a new set of numbers for each pixel.
[0024] Unfortunately, RGB values are not directly mapped to the color space used with electrophoretic displays; therefore, it is necessary to convert RGB image files to a new format. In addition, since the shape of the RGB color gamut is very different from, for example, the shape of the ACeP color gamut, there is no simple conversion that would convert an RGB file to an ACeP file. [Prior art documents] [Patent Documents]
[0025] [Patent Document 1] U.S. Publication No. 7,321,459 [Patent Document 2] U.S. Publication No. 9,361,836 [Overview of the project] [Means for solving the problem]
[0026] Disclosed herein is a system for converting RGB image data into image data for advanced color electronic paper. In the first stage, the RGB source space is mapped to the ACeP device space using a tetrahedron decomposition of the RGB source space. The source tetrahedron is then associated with the tetrahedron decomposition of the device color space using the same set of vertices, with associated color names. For example, if one tetrahedron is R, Y, W, K in the source space, the associated palette colors R, Y, W, K in the device space define a tetrahedron in the device space, which may be distorted in shape compared to the source space tetrahedron. However, it is possible to define a smooth mapping between them using a centroid coordinate method. Using this method, each color point in any source space tetrahedron can be mapped to a device space tetrahedron. In particular, a centroid quantization method is employed to generate the tetrahedron decomposition. By mapping the source RGB color angles to associated device palette colors, it is possible to maintain neutrality of the neutral axis (i.e., the black-white axis). This is done by using a Kuhn decomposition into six tetrahedra. In this decomposition, the black-white (KW) border is a component of all tetrahedra. This means that any gray source color will be mapped to a section connecting the black and white of the device. The Kuhn decomposition therefore does not map colors between two adjacent hues that are outside its hue range. This system can be implemented in real time using lookup tables and on-device processing, or the processing can be done remotely, i.e., via cloud computing, which would allow the use of more refined color maps.
[0027] In the second step, the system dithers a set of images in the device color space to generate a greater number of perceived colors using a limited set of primary colors (typically red, green, blue, cyan, yellow, magenta, white, and black). The system includes a quantizer that implements the dithering step and generates a decomposition that is separated across the neutral axis. The resulting dithered pattern consists of a palette of colors with lightness similar to the RGB space, but with reduced granularity.
[0028] In one aspect, a color display comprising an electrophoretic display includes an electrophoretic medium comprising a light-transmitting electrode, an active matrix of pixel electrodes, and four types of electrophoretic particles, wherein the electrophoretic medium is positioned between the light-transmitting electrode and the active matrix of the pixel electrodes, and the electrophoretic display comprises an electrophoretic medium capable of generating eight primary colors at each pixel electrode, a non-transient memory for storing a lookup table that maps RGB (red, green, blue) colors to colors generated by the electrophoretic display, a processor coupled to the non-transient memory, and a controller coupled to the processor and configured to provide electrophoretic display pixel color commands to the active matrix of the pixel electrodes. The processor is configured to perform the following steps: receiving RGB image data from the non-transient memory for each pixel in the image; converting the RGB image data to electrophoretic display image data for each pixel in the image using the lookup table (LUT) stored in the non-transient memory; and transmitting the electrophoretic display image data to the controller for each pixel. In some embodiments, the lookup table (LUT) incorporates a tetrahedron mapping that incorporates the black-white axis in the RGB color space and the black-white axis in the electrophoretic display color space. In some embodiments, for each pixel in the image, the step of converting the RGB image data to electrophoretic display image data further includes the step of assigning a color separation cumulative value to the electrophoretic display image data based on a linear combination of primary colors generated by the electrophoretic display. In some embodiments, the processor is further configured to compare the color separation cumulative value with a threshold array prior to sending the electrophoretic display image data to the controller. In some embodiments, the threshold array is a blue noise mask (BNM). In some embodiments, the processor compares the color separation cumulative value with the threshold array by using a quantization function. In some embodiments, the electrophoretic medium is confined within a plurality of microcapsules or microcells.In some embodiments, the processor is further configured to resize the RGB image data. In some embodiments, the color display also includes a temperature sensor, and the lookup table (LUT) is indexed to temperature. In some embodiments, the active matrix of the pixel electrodes includes thin-film transistors (TFTs) comprising a metal oxide semiconductor.
[0029] In one aspect, the method is for converting RGB (red, green, blue) image data into electrophoretic display image data, wherein the electrophoretic display comprises four types of electrophoretic particles, and the electrophoretic display is capable of generating eight primary colors at each pixel electrode of the active matrix of the pixel electrodes. The method includes the steps of: receiving RGB image data for each pixel in an image; converting the RGB image data into electrophoretic display image data for each pixel using a processor and a lookup table (LUT) stored in non-transient memory coupled to the processor; transmitting the electrophoretic display image data for each pixel in the image to a controller coupled to the processor; and transmitting voltage commands from the controller to the active matrix of the pixel electrodes. In some embodiments, the lookup table (LUT) incorporates a tetrahedron mapping that incorporates the black-white axis in the RGB color space and the black-white axis in the electrophoretic display color space. In some embodiments, the step of converting RGB image data to electrophoretic display image data pixel by pixel further includes the step of assigning a color separation cumulative value to the electrophoretic display image data based on a linear combination of primary colors generated by the electrophoretic display. In some embodiments, the processor is further configured to compare the color separation cumulative value with a threshold array prior to sending the electrophoretic display image data to a controller. In some embodiments, the threshold array is a blue noise mask (BNM).
[0030] In one aspect, the system comprises a backplane on a viewing surface, which includes a backplane comprising a layer of metal oxide semiconductor, and a color electrophoretic medium disposed between the light-transmitting electrode and the backplane, wherein each thin-film transistor comprises a backplane comprising a layer of metal oxide semiconductor, and the color electrophoretic medium comprises (a) a fluid, (b) a plurality of first and a plurality of second particles dispersed in the fluid, wherein the first and second particles have opposite polarity charges, the first particles are light-scattering particles, and the second particles have one of the subtractive primary colors, and (c) a plurality of third and a plurality of fourth particles dispersed in the fluid, wherein the third and fourth particles have opposite polarity charges, and the third and fourth particles each have a subtractive primary color different from that of the second particles.
[0031] In some embodiments, the first electric field required to separate aggregates formed by third and fourth types of particles is greater than the second electric field required to separate aggregates formed by any two other types of particles. In some embodiments, at least two of the second, third, and fourth particles are non-light scattering. In some embodiments, the first particles are white, and the second, third, and fourth particles are non-light scattering. In some embodiments, the first and third particles are load-charged, and the second and fourth particles are positively charged. In some embodiments, the first, second, third, and fourth particles are white, cyan, yellow, and magenta, respectively, with the white and yellow particles being load-charged and the magenta and cyan particles being positively charged. In some embodiments, when the pigment is distributed substantially isotropically at a volume ratio of 15% within a 1 μm thick layer comprising the pigment and a liquid with a refractive index of less than 1.55, the yellow, magenta, and cyan pigments exhibit diffuse reflectance at 650, 550, and 450 nm, respectively, when measured against a black background of less than 2.5%. In some embodiments, the liquid is a nonpolar liquid having a dielectric constant of less than about 5. In some embodiments, the fluid contains dissolved or dispersed polymers having an average molecular weight value exceeding about 20,000 and being inherently non-adsorbent on particles. In some embodiments, the metal oxide semiconductor is indium gallium zinc oxide (IGZO). The above invention may be incorporated into e-book readers, portable computers, tablet computers, mobile phones, smart cards, signs, watches, shelf signs, or flash drives.
[0032] In another aspect, the color electrophoretic display includes a controller and a backplane comprising a backplane including a light-transmitting electrode on a viewing surface and an array of thin-film transistors coupled to pixel electrodes, each thin-film transistor comprising a layer of metal oxide semiconductor. The color electrophoretic medium is placed between the light-transmitting electrode and the backplane and includes (a) a fluid and (b) a plurality of first and a plurality of second particles dispersed in the fluid, wherein the first and second particles have opposite polarity charges, the first particles are light-scattering particles, and the second particles have one of the subtractive primary colors and (c) a plurality of third and a plurality of fourth particles dispersed in the fluid, wherein the third and fourth particles have opposite polarity charges, and the third and fourth particles each have a subtractive primary color different from that of the second particles. The controller is configured to provide multiple drive voltages to the pixel electrodes, thereby enabling white, yellow, red, magenta, blue, cyan, green, and black to be displayed at each pixel electrode while maintaining a constant voltage at the light-transmitting electrodes. In some embodiments, the controller is configured to provide voltages above 25 volts and below -25 volts to the pixel electrodes. In some embodiments, the controller is configured to additionally provide voltages between 25V and 0V and between -25V and 0V. In some embodiments, the metal oxide semiconductor is indium gallium zinc oxide (IGZO).
[0033] In another aspect, a color electrophoretic display includes a controller, a light-transmitting electrode on the viewing surface, a backplane electrode, and a color electrophoretic medium placed between the light-transmitting electrode and the backplane electrode. The color electrophoretic medium includes (a) a fluid, (b) a plurality of first and a plurality of second particles dispersed in the fluid, wherein the first and second particles have opposite polarity charges, the first particles are light-scattering particles, and the second particles have one of the subtractive primary colors, and (c) a plurality of third and a plurality of fourth particles dispersed in the fluid, wherein the third and fourth particles have opposite polarity charges, and the third and fourth particles each have a subtractive primary color different from that of the second particles. The controller is configured to provide a first high voltage and a first low voltage to a light-transmitting electrode, and a second high voltage, zero voltage, and a second low voltage to a backplane electrode, thereby enabling white, yellow, red, magenta, blue, cyan, green, and black to be displayed on the viewing surface, wherein the magnitudes of at least one of the first high voltage, first low voltage, second high voltage, and second low voltage are not identical. In some embodiments, the magnitudes of the first high voltage and the second high voltage are identical. In some embodiments, the magnitudes of the first low voltage and the second low voltage are identical, and the magnitudes of the first high voltage and the first low voltage are not identical.
[0034] In another aspect, a color electrophoretic display includes a controller, a light-transmitting electrode on the viewing surface, a backplane electrode, and a color electrophoretic medium placed between the light-transmitting electrode and the backplane electrode. The color electrophoretic medium includes (a) a fluid, (b) a plurality of first and a plurality of second particles dispersed in the fluid, wherein the first and second particles have opposite polarity charges, the first particles are light-scattering particles, and the second particles have one of the subtractive primary colors, and (c) a plurality of third and a plurality of fourth particles dispersed in the fluid, wherein the third and fourth particles have opposite polarity charges, and the third and fourth particles each have a subtractive primary color different from that of the second particles. The controller is configured to display white, yellow, red, magenta, blue, cyan, green, and black on a viewing surface by providing one of several time-dependent driving voltages to the backplane electrode, while providing one of the following driving voltages to the light-transmitting electrode: 1) a high voltage for the first time, a low voltage for the second time, and a high voltage for the third time, or 2) a low voltage for the first time, a high voltage for the second time, and a low voltage for the third time.
[0035] In another aspect, the system for driving the electrophoretic medium comprises an electrophoretic display, a power supply capable of providing positive and negative voltages, the magnitudes of which are different, and a controller coupled to an upper electrode driver, a first drive electrode driver, and a second drive electrode driver. The electrophoretic medium includes a light-transmitting upper electrode on a visible surface, a first drive electrode, a second drive electrode, and an electrophoretic medium positioned between the upper electrode and the first and second drive electrodes. The controller is configured to provide the following in one embodiment: A) a positive voltage to the upper electrode, a negative voltage to the first drive electrode, and a positive voltage to the second drive electrode in the first frame; B) a negative voltage to the upper electrode, a negative voltage to the first drive electrode, and a negative voltage to the second drive electrode in the second frame; C) a ground voltage to the upper electrode, a ground voltage to the first drive electrode, and a positive voltage to the second drive electrode in the third frame; and D) a positive voltage to the upper electrode, a positive voltage to the first drive electrode, and a positive voltage to the second drive electrode in the fourth frame. In one embodiment, the electrophoretic medium is encapsulated in a plurality of microcapsules, which are dispersed in a polymer binder between the upper electrode and the first and second drive electrodes. In one embodiment, the electrophoretic medium is encapsulated in an array of microcells having openings, which are sealed with a polymer binder, and the array of microcells is positioned between the upper electrode and the first and second drive electrodes. In one embodiment, the electrophoretic medium comprises a nonpolar fluid and four sets of particles having different optical properties. In one embodiment, the first and second sets of particles have opposite polarity charges, the third and fourth sets of particles have opposite polarity charges, the first particles are light-scattering particles, and the second, third, and fourth sets of particles are each different subtractive primary colors.In one embodiment, the controller is configured to provide a combination of positive voltage, negative voltage, and ground voltage to the upper electrode and the first drive electrode so that white, yellow, red, magenta, blue, cyan, green, and black can be displayed on the viewing surface. In one embodiment, the first and second sets of particles have opposite polarities of charge, the third and fourth sets of particles have the same charge as the second set of particles, the first particles are light-scattering particles, and the second, third, and fourth sets of particles are each different subtractive primary colors. In one embodiment, the controller is configured to provide a combination of positive voltage, negative voltage, and ground voltage to the upper electrode and the first drive electrode so that white, yellow, red, magenta, blue, cyan, green, and black can be displayed on the viewing surface. In one embodiment, the positive voltage is +15V and the negative voltage is -9V. In one embodiment, the positive voltage is +9V and the negative voltage is -15V.
[0036] In another aspect, the system for driving the electrophoretic medium comprises an electrophoretic display, a power supply capable of providing positive and negative voltages, the magnitudes of which are different, and a controller coupled to an upper electrode driver, a first drive electrode driver, and a second drive electrode driver. The electrophoretic medium includes a light-transmitting upper electrode on a visible surface, a first drive electrode, a second drive electrode, and an electrophoretic medium positioned between the upper electrode and the first and second drive electrodes. The controller is configured to provide the following in each of the following embodiments: A) in the first frame, a positive voltage to the upper electrode, a negative voltage to the first drive electrode, and a positive voltage to the second drive electrode; B) in the second frame, a negative voltage to the upper electrode, a negative voltage to the first drive electrode, and a negative voltage to the second drive electrode; C) in the third frame, a ground voltage to the upper electrode, a ground voltage to the first drive electrode, and a positive voltage to the second drive electrode; and D) in the fourth frame, a positive voltage to the upper electrode, a positive voltage to the first drive electrode, and a positive voltage to the second drive electrode. In one embodiment, the controller is configured to further provide the following in each of the following embodiments: E) in the fifth frame, a negative voltage to the upper electrode, a ground voltage to the first drive electrode, and a negative voltage to the second drive electrode; and F) in the sixth frame, a ground voltage to the upper electrode, a ground voltage to the first drive electrode, and a ground voltage to the second drive electrode. In one embodiment, the electrophoretic medium is encapsulated in a plurality of microcapsules, which are dispersed in a polymer binder between the upper electrode and the first and second drive electrodes. In one embodiment, the electrophoretic medium is encapsulated in an array of microcells having openings, which are sealed with a polymer binder, and the array of microcells is positioned between the upper electrode and the first and second drive electrodes. In one embodiment, the electrophoretic medium comprises a nonpolar fluid and four sets of particles having different optical properties. In one embodiment, the first and second sets of particles have opposite polarity charges, the third and fourth sets of particles have opposite polarity charges, the first particles are light-scattering particles, and the second, third, and fourth sets of particles are each different subtractive primary colors.In one embodiment, the controller is configured to provide a combination of positive voltage, negative voltage, and ground voltage to the upper electrode and the first drive electrode so that white, yellow, red, magenta, blue, cyan, green, and black can be displayed on the viewing surface. In one embodiment, the first and second sets of particles have opposite polarities of charge, the third and fourth sets of particles have the same charge as the second set of particles, the first particles are light-scattering particles, and the second, third, and fourth sets of particles are each different subtractive primary colors. In one embodiment, the controller is configured to provide a combination of positive voltage, negative voltage, and ground voltage to the upper electrode and the first drive electrode so that white, yellow, red, magenta, blue, cyan, green, and black can be displayed on the viewing surface. In one embodiment, the positive voltage is +15V and the negative voltage is -9V. In one embodiment, the positive voltage is +9V and the negative voltage is -15V. This specification also provides, for example, the following: (Item 1) It is a color display, Electrophoretic displays (101, 102), wherein the electrophoretic displays (101, 102) comprise a light-transmitting electrode (110), an active matrix (130) of pixel electrodes, and an electrophoretic medium (120) comprising four types of electrophoretic particles (121, 122, 123, 124), the electrophoretic medium (120) being positioned between the light-transmitting electrode (110) and the active matrix (130) of the pixel electrodes, and the electrophoretic displays (101, 102) are capable of generating eight primary colors at each pixel electrode (130). A non-transient memory (70) for storing a lookup table that maps RGB (red, green, blue) colors to colors generated by the electrophoretic displays (101, 102), A processor (50) coupled to the non-transient memory (70), A controller (60) is coupled to the processor (50) and is configured to provide electrophoretic display pixel color commands to the active matrix (130) of the pixel electrodes. The processor (50) is equipped with the following steps, namely, For each pixel in the image, RGB image data is received from the non-transient memory (70), Using the lookup table (LUT) stored in the non-transient memory (70), the RGB image data is converted to electrophoretic display image data for each pixel in the image. For each pixel, the electrophoretic display image data is transmitted to the controller (60). A color display configured to perform the following actions. (Item 2) The aforementioned lookup table (LUT) incorporates a mapping between tetrahedra that incorporate the black-white axis in the RGB color space and the black-white axis in the electrophoretic display color space, as described in item 1, for the color display. (Item 3) The color display according to item 1 or 2, wherein for each pixel in the image, converting the RGB image data to electrophoretic display image data further includes assigning a color separation cumulative value to the electrophoretic display image data based on a linear combination of primary colors generated by the electrophoretic display (101, 102). (Item 4) The color display according to item 3, wherein the processor (50) is further configured to compare the cumulative color separation values with a threshold array prior to transmitting the electrophoretic display image data to the controller (60). (Item 5) The threshold array is a blue noise mask (BNM), as described in item 4 for the color display. (Item 6) The color display according to item 4, wherein the processor (50) compares the color separation cumulative value with a threshold array by using a quantization function. (Item 7) The electrophoretic medium (120) is enclosed within a plurality of microcapsules (126) or microcells (127) in the color display described in item 1. (Item 8) The color display according to item 1, wherein the processor (50) is further configured to resize the RGB image data. (Item 9) The color display described in item 1 is further equipped with a temperature sensor, and the lookup table (LUT) is indexed to temperature. (Item 10) The color display according to item 1, wherein the active matrix (130) of the pixel electrodes includes thin-film transistors (TFTs) having metal oxide semiconductors. (Item 11) A method for converting RGB (red, green, blue) image data into electrophoretic display image data, wherein the electrophoretic display (101, 102) comprises four types of electrophoretic particles (121, 122, 123, 124), and the electrophoretic display (101, 102) is capable of generating eight primary colors at each pixel electrode (130) of the active matrix (130) of the pixel electrodes, and the method is Receiving RGB image data for each pixel in the image, Using a processor (50), and using a lookup table (LUT) stored in a non-transient memory (70) coupled to the processor (50), the RGB image data is converted pixel by pixel into electrophoretic display image data. For each pixel in the image, the electrophoretic display image data is transmitted to a controller (60) coupled to the processor (50), The voltage command is transmitted from the controller (60) to the active matrix (130) of the pixel electrode. Methods that include... (Item 12) The method according to item 11, wherein the lookup table (LUT) incorporates a mapping between tetrahedra that incorporate the black-white axis in the RGB color space and the black-white axis in the electrophoretic display color space. (Item 13) The method according to item 11 or 12, wherein, for each pixel, converting the RGB image data to electrophoretic display image data further includes assigning a color separation cumulative value to the electrophoretic display image data based on a linear combination of primary colors generated by the electrophoretic display (101, 102). (Item 14) The method according to item 13, wherein the processor (50) is further configured to compare the color separation cumulative value with a threshold array prior to transmitting the electrophoretic display image data to the controller (60). (Item 15) The method according to item 14, wherein the threshold array is a blue noise mask (BNM). [Brief explanation of the drawing]
[0037] [Figure 1] Figure 1 is a schematic cross-sectional view showing an embodiment of an encapsulated electrophoretic display suitable for use in combination with the method of the present invention.
[0038] [Figure 2] Figure 2 is a schematic cross-sectional view showing an embodiment of an encapsulated electrophoretic display suitable for use in combination with the method of the present invention.
[0039] [Figure 3A]Figure 3A illustrates an exemplary equivalent circuit for a single pixel of an electrophoretic display, where the voltage on the single pixel is controlled using a transistor. The circuit in Figure 3A is typically used within an active matrix backplane.
[0040] [Figure 3B] Figure 3B illustrates an exemplary color display, which includes a display module that may be any electro-optical display module, but is preferably a color electrophoretic display module. The color display also includes a processor, memory, one or more power sources, and a controller.
[0041] [Figure 4] Figure 4 is a schematic cross-sectional view showing the positions of various colored particles in a colored electrophoretic medium when displaying black, white, subtractive primary colors, and additive primary colors.
[0042] [Figure 5] Figure 5 shows an exemplary push-pull drive scheme for addressing an electrophoretic medium containing three subtractive particles and scattered (white) particles.
[0043] [Figure 6] Figure 6 illustrates an idealized conversion between the standard RGB color space and the idealized device color space, where the two color spaces are similar in shape and size. In practice, the standard RGB color space and the ACeP color space are not similar in shape and size, necessitating the use of tetrahedron decomposition, mapping, and reconstruction.
[0044] [Figure 7A] Figure 7A shows the first step in decomposing the RGB color space into a series of tetrahedra.
[0045] [Figure 7B]Figure 7B shows the second step of decomposing the device color space (ACeP color space) into a series of tetrahedra. The shape and size of the device color space are illustrative only and may vary depending on environmental factors such as the display temperature and the spectrum of incident light.
[0046] [Figure 7C] Figure 7C shows the second step of mapping color data from the decomposed RGB tetrahedron to the decomposed device color space (i.e., ACeP color space) tetrahedron.
[0047] [Figure 8] Figure 8 illustrates that the mapped colors are then dithered to generate an ACeP image file for display on the device.
[0048] [Figure 9] Figure 9 is an illustrative flowchart used by the system of the present invention. [Modes for carrying out the invention]
[0049] Detailed explanation Here, we are interested in mapping source (input) colors, typically standard RGB values, to device colors, e.g., ACeP device colors, at each pixel of a color electrophoretic display. Such displays typically have a short list of possible colors that can be produced, called a palette. In a typical scenario, eight colors would be selected from the palette, typically having the names black, red, green, blue, cyan, magenta, yellow, and white, although the actual colors would not be identical to the source space colors with those names. These colors can be dithered to provide a sustained range of hue perception when viewed from a sufficient distance. Depending on the number of pixels in the device and the size of the individual pixels, a sufficient distance can be several centimeters to several meters (or more).
[0050] In a standard scenario, the eight palette colors are associated with the basic colors K, R, G, B, C, M, Y, and W, which are the corners of the R, G, B cube (see Figure 6). These colors are the source space colors with the highest chromaticity, and therefore, it makes sense to directly map these colors to the palette colors. That is, if a pixel in source space has (R, G, B) = 255, 0, 0, that pixel should be mapped to the palette color associated with red, etc. One way to guarantee this property is to dither the source image in source space using only the source space colors associated with the palette. Then, after dithering, the associated device colors are replaced with each of the source colors in the actual pixels. This works well in some cases, but large hue shifts can occur when the device colors are not well balanced, such as when mapping from a cube to a distorted polygon. Hue shifts can be unstable, especially in the neutral area. For example, it can be assumed that a neutral color can be formed by dithering equal amounts of red, green, and blue, since this is possible within the source space. However, if the green color in the device space is particularly weak, the target gray hue will take on a purplish hue within the new device. Undesirable hue shifts can be minimized by using the systems and methods described herein. In some cases, the system includes an electrophoretic medium using positive and negative voltage sources having different magnitudes, and a controller that circulates the upper electrode between the two voltage sources and ground, while coordinating the driving of at least two driving electrodes facing the upper electrode. The resulting system can achieve a nearly identical color state compared to supplying each driving electrode with six independent drive levels and ground. Thus, the system simplifies the required electronic equipment with only slight loss in the color gamut. This system is particularly useful for addressing electrophoretic media containing four sets of different particles, for example, three of which are colored and subtractive, and one of which is light-scattering.
[0051] Display devices may be constructed using the electrophoretic fluid of the present invention in several ways known in the prior art. The electrophoretic fluid may be encapsulated in microcapsules or incorporated into a microcell structure and then sealed with a polymer layer. The microcapsules or microcell layers may be coated or embossed onto a plastic substrate or film coated with a transparent coating of conductive material. The assembly may be laminated onto a backplane having pixel electrodes using a conductive adhesive. Alternatively, the electrophoretic fluid may be dispensed directly onto a thin continuous cell grid arranged on the backplane, containing the active matrix of the pixel electrodes. The filled grid may then be top-sealed together with an integrated protective sheet / light-transmitting electrode.
[0052] Referring to Figures 1 and 2, an electrophoretic display (101, 102) typically comprises an upper light-transmitting electrode 110, an electrophoretic medium 120, and a bottom drive electrode 130 / 135, which are often pixel electrodes of an active matrix of pixels controlled by thin-film transistors (TFTs). Alternatively, the bottom drive electrode 130 / 135 may be directly wired to a controller or some other switch that provides voltage to the bottom drive electrode 130 / 135, resulting in a change in the optical state of the electrophoretic medium 120, i.e., a change in the divided electrodes. Importantly, the junction between the drive electrodes 130 / 135 does not need to coincide with the intersection of the microcapsules or the walls 127 of the microcells. Because the electrophoretic medium 120 is thin enough and the capsules or microcells are wide enough, the pattern of the drive electrodes (square, circular, hexagonal, corrugated, string, or otherwise) will be shown when the display is viewed from the viewing surface, rather than the pattern of the containers. The electrophoretic medium 120 contains at least one electrophoretic particle 121, however, a second electrophoretic particle 122 or a third electrophoretic particle 123, a fourth electrophoretic particle 124, or more particles are feasible [note that the third electrophoretic particle 123 and the fourth electrophoretic particle 124 may be contained within the microcapsule 126 in Figure 1, but are omitted for clarity]. The electrophoretic medium 120 typically contains a solvent such as isoparaffin, and may also contain a dispersion polymer and a charge control agent to promote state stability, e.g., bistability, i.e., the ability to maintain an electro-optic state without inputting any additional energy.
[0053] The electrophoretic medium 120 is typically compartmentalized by the walls of microcapsules 126 or microcells 127. The entire display stack is typically placed on a substrate 150, which may be rigid or flexible. The displays (101, 102) also typically include a protective layer 160, which may simply protect the upper electrode 110 from damage, or it may enclose the entire display (101, 102) to prevent water ingress, etc. The electrophoretic displays (101, 102) may also optionally include one or more adhesive layers 140, 170 and / or sealing layers 180. In some embodiments, the adhesive layer may contain a primer component or a separate primer layer (not shown in Figure 1 or 2) may be used to improve adhesion to the electrode layer 110 (the structure of electrophoretic displays and their components, pigments, adhesives, electrode materials, etc., are described in numerous patents and patent applications published by E Ink Corporation, including U.S. Patent Nos. 6,922,276, 7,002,728, 7,072,095, 7,116,318, 7,715,088, and 7,839,564 (all of which are incorporated herein by reference as a whole)).
[0054] Thin-film transistor (TFT) backplanes typically have only one transistor per pixel electrode or propulsion electrode. Conventionally, each pixel electrode has a capacitor electrode associated with it, such that the pixel electrode and the capacitor electrode form a capacitor. See, for example, International Patent Application WO01 / 07961. In some embodiments, an N-type semiconductor (e.g., amorphous silicon) may be used to form the transistors, and the “selective” and “deselective” voltages applied to the gate electrode can be positive and negative, respectively.
[0055] As illustrated in Figure 3A, each transistor (TFT) is connected to a gate line, a data line, and a pixel electrode (propulsion electrode). When a sufficient positive voltage (or a negative voltage, depending on the type of transistor) is present on the TFT gate, a low impedance exists between the scan line and the pixel electrode coupled to the TFT drain (i.e., Vg is in the "on" or "open" state), and therefore the voltage on the scan line is transmitted to the pixel electrode. However, when a negative voltage is present on the TFT gate, a high impedance exists, and the voltage is stored on the pixel storage capacitor, and other pixels, when addressed (i.e., Vg is "off" or "closed"), are not affected by the voltage on the scan line. Therefore, ideally, the TFT should act as a digital switch. In practice, when the TFT is in the "on" setting, there is still a certain amount of resistance, and therefore the pixel takes some time to charge. In addition, when the TFT is in the "off" setting, the voltage is V S From V pix Leakage can occur, causing crosstalk. Increasing the capacitance of the storage capacitor Cs reduces crosstalk but at the cost of making it more difficult to charge the pixels and increasing the charging time. As shown in Figure 3A, a separate voltage (V TOP A current is provided to the upper electrode, and therefore an electric field (V) is provided between the upper electrode and the pixel electrode. FPL ) establishes. Ultimately, this determines the optical state of the relevant electro-optic medium, V FPL This is the value. The first side of the storage capacitor is coupled to the pixel electrode, while the second side of the storage capacitor is connected to a separate line (V) that allows charge to be removed from the pixel electrode. COM ) is coupled to. For example, U.S. Patent No. 7,176,880 (which is incorporated as a whole by reference) [In some embodiments, an N-type semiconductor (e.g., amorphous silicon) may be used to form the transistor, and the “selective” and “deselective” voltages applied to the gate electrode may be positive and negative, respectively.] In some embodiments, V COMWhile it can be grounded, however, there are many different designs for discharging charge from a charge capacitor, as described, for example, in U.S. Patent No. 10,037,735 (which is incorporated as a whole by reference).
[0056] One problem associated with conventional amorphous silicon TFTs is that the operating voltage is limited to approximately ±15V, which in turn causes the transistors to begin leaking current and eventually fail. While a ±15V operating range is suitable for many two-particle electrophoresis systems, it has been found that having an increased voltage range facilitates the separation of particles with different zeta potentials, resulting in more advanced electrophoretic displays that update faster and have more reproducible colors. One solution to increase the voltage range for the pixel electrodes is to use top-plane switching, which causes the voltage on the upper (common) electrode to vary as a function of time. Another solution is to use advanced TFT materials such as metal oxides to enable higher voltage switching, i.e., an operating range of approximately ±28V.
[0057] Typically, TFTs are arranged in a matrix with gate and signal lines to each TFT, and drain electrodes are typically coupled to pixel electrodes. This active matrix backplane is coupled to an electro-optical medium, as illustrated, for example, in Figures 1 and 2, and is typically sealed to form a display module 55, as shown in Figure 3B. Such a display module 55 is the focus of the color display 100. The color display 100 typically includes a processor 50, which coordinates many functions related to displaying content on the display module 55 and is configured to convert a “standard” image, such as an sRGB image, into a color regime that best replicates the image on the display module 55. The processor is typically a mobile processor chip, manufactured by Freescale or Qualcomm, etc., but other manufacturers are also known. The processor frequently communicates with non-transient memory 70, from which it retrieves image files and / or lookup tables and performs the color image conversion described below. The color display 100 may have one or more non-transient memory chips. The memory 70 may be flash memory. Once the desired image is converted for display on the display module 55, specific image commands are sent to the controller 60, which facilitates the transmission of voltage sequences to individual thin-film transistors (described above). Such voltages typically originate from one or more power sources 80, which may include, for example, a power management integration chip (PMIC). The color display 100 may also include communications 85, which may be, for example, the WIFI protocol or BLUETOOTH®, enabling the color display 100 to receive images and commands, which may also be stored in the memory 70.The color display 100 may also include one or more sensors 90, which may include a temperature sensor and / or a light sensor, and such information may be fed to the processor 50, which may enable the processor to select an optimal lookup table when such a lookup table is indexed with respect to ambient temperature or incident illumination intensity or spectrum. In some cases, multiple components of the color display 100 may be embedded within a single integrated circuit. For example, a special integrated circuit may perform the functions of the processor 50 and the controller 60.
[0058] In the ACeP example, the eight primary colors (red, green, blue, cyan, magenta, yellow, black, and white) each correspond to four different arrangements of pigments, so that the viewer sees only those colored pigments (i.e., only the light-scattering pigments) that are on the viewing side of the white pigment. More specifically, when cyan, magenta, and yellow particles are below the white particles (situation [A] in Figure 4), no particles are present above the white particles, and the pixels simply display white. When a single particle is above the white particles, the color of that single particle is displayed as yellow, magenta, and cyan in situations [B], [D], and [F] in Figure 4, respectively. When two particles are above the white particles, the displayed color is a combination of those of the two particles. In other words, in Figure 4, in situation [C], the magenta and yellow particles display red; in situation [E], the cyan and magenta particles display blue; and in situation [G], the yellow and cyan particles display green. Finally, when all three colored particles are above the white particle (situation [H] in Figure 4), all incident light is absorbed by the subtractive primary colored particles, and the pixel displays black.
[0059] One possibility is that one subtractive primary color can be rendered by light-scattering particles, thereby the display having two types of light-scattering particles, one of which is white and the other is colored. However, in this case, the position of the light-scattering colored particles relative to the other colored particles that cover the white particles will be important. For example, when rendering black (when all three colored particles are present covering the white particles), the scattering colored particles cannot be present covering the non-scattering colored particles (otherwise they would be partially or completely hidden behind the scattering particles, and the rendered color would be that of the scattering colored particles, not black). If more than one type of colored particle scatters light, rendering black will not be easy.
[0060] To produce these colors, it has been found that waveforms for aligning the four pigments into the appropriate configuration are best achieved using at least seven voltage levels (high positive, medium positive, low positive, zero, low negative, medium negative, high negative). Figure 5 shows typical waveforms (in a simplified form) used to drive the four-particle color electrophoresis display system described above. Such waveforms have a “push-pull” structure, i.e., they consist of dipoles with two pulses of opposite polarity. The magnitude and length of these pulses determine the color obtained. Generally, the higher the magnitude of the “high” voltage, the better the color gamut achieved by the display. The “high” voltage is typically 20V–30V, more typically around 25V, e.g., 24V. The “medium” (M) level is typically 10V–20V, more typically around 15V, e.g., 15V or 12V. The "low" (L) level is typically 3V to 10V, and more typically around 7V, e.g., 9V or 5V. Naturally, the values of H, M, and L will depend somewhat on the particle composition and the environment of the electrophoretic medium. In some applications, H, M, and L may be set by the cost of the components used to generate and control these voltage levels.
[0061] As shown in Figure 5, if the upper electrode is held at a constant voltage (i.e., the top plane is not switched), even a "simple" waveform for an ACeP® system requires the drive electronics to provide seven different voltages (+H, +M, +L, 0, -L, -M, -H) to the data line during the update of a selected pixel of the display. While multilevel source drivers capable of delivering seven different voltages are available, many commercially available source drivers for electrophoretic displays allow only three different voltages (typically positive, zero, and negative) to be delivered during a single frame.
[0062] Naturally, achieving the desired color using the drive pulses in Figure 5 is particle-dependent, starting the process from a known state, and is unlikely to be the last color displayed on the pixel. Therefore, a series of reset pulses precede the drive pulses, increasing the amount of time required to update the pixel from the first color to the second color. The reset pulses are incorporated by reference to U.S. Patent No. 10,593,272. The length of these pulses (refresh and address) and any rest (i.e., the period of zero voltage between them) may be selected such that the entire waveform (i.e., the integral of voltage over time across the entire waveform) is DC balanced (i.e., the integral of voltage over time is substantially zero). DC balance can be achieved by adjusting the pulse and rest lengths in the reset phase such that the net impulse supplied in the reset phase is equal in magnitude and opposite in sign to the net impulse supplied in the address phase, during which the display switches to a particular desired color.
[0063] Modifying the rail voltage offers some flexibility in achieving different electro-optical performance compared to a four-particle electrophoresis system, but there are many limitations introduced by top-plane switching. For example, typically, to produce a white state using the display of the present invention, a lower negative voltage V M- However, the maximum negative voltage V H- It is preferable that it be less than half of that.
[0064] An alternative solution to the complexity of top-plane switching can be provided by fabricating control transistors from less common materials with higher electron mobility, thereby enabling the transistors to directly switch larger control voltages, e.g., + / -30V. Newly developed active-matrix backplanes may include thin-film transistors incorporating metal oxide materials such as tungsten oxide, tin oxide, indium oxide, and zinc oxide. In these applications, channel-forming regions are formed per transistor using such metal oxide materials, enabling faster switching of higher voltages. Such transistors typically include a gate electrode, a gate insulating film (typically SiO2), a metal source electrode, a metal drain electrode, and a metal oxide semiconductor film covering the gate insulating film, which at least partially polymerizes with the gate electrode, source electrode, and drain electrode. Such backplanes are available from manufacturers such as LG, Foxconn, and BOE.
[0065] One preferred metal oxide material for such applications is indium gallium zinc oxygen (IGZO). IGZO-TFTs have an electron mobility 20 to 50 times greater than amorphous silicon. By using IGZO-TFTs in an active matrix backplane, it is possible to provide voltages greater than 30V via a suitable display driver. Furthermore, a source driver capable of supplying at least five, preferably seven, levels provides different driving paradigms for a four-particle electrophoretic display system. In one embodiment, there may be two positive voltages, two negative voltages, and zero volts. In another embodiment, there may be three positive voltages, three negative voltages, and zero volts. In one embodiment, there may be four positive voltages, four negative voltages, and zero volts. These levels may be selected within a range of about -27V to +27V, without the limitations imposed by the switching of the top plane as described above.
[0066] Using advanced backplanes such as metal oxide backplanes, i.e., using a suitable push-pull waveform as illustrated in Figure 5, it is conceivable that each pixel can be directly addressed. This significantly reduces the time required to update each pixel, in some cases reducing updates from 6 seconds to less than 1 second. In some cases, it may be necessary to use a reset pulse to establish a starting point for addressing, but the reset can be performed more quickly at higher voltages. In addition, in 4-color electrophoretic displays with a reduced color set, it is conceivable that direct driving from the first color to the second color is possible using a specific waveform that is only slightly longer than the push-pull waveform, as shown in Figure 5.
[0067] It is simply possible to generate eight primary colors, as illustrated in Figures 4 and 5, but the resulting color space is not compatible with standard RGB image data, e.g., 8-bit RGB color image data. Ideally, the range of eight primary colors in a reflective color device would be roughly cubic, as shown in Figure 6. In such cases, a simple transformation f(p i ) can be used to convert each pixel color assignment to a new pixel assignment in the new device. In this idealized embodiment, converting any of trillions of existing RGB images to a new image suitable for use on a new device, such as a reflective color electrophoretic display, would be trivial. Unfortunately, commercially available reflective color devices typically do not have a cubic color space, and the size and shape of the reflective color space depend on the light source. Furthermore, in the case of electrophoretic displays, the color response may depend on other environmental factors such as temperature and device performance such as TFT performance and frame rate.
[0068] Therefore, the present invention uses a three-step process to convert RGB image data to device image data. One method for converting RGB image data to ACeP image data is illustrated in Figures 7A-7C. In the first step, the RGB color space and the device color space are deconvolved into a set of tetrahedra, each tetrahedron containing two other primary color vertices, such as the KW axis and RY, as shown in Figures 7A and 7B. Only six tetrahedra need to be defined to map the color spaces, however additional tetrahedra may be created. In the second step, portions of the image color data present in a particular RGB tetrahedron are mapped to image color data for the device tetrahedron, as shown in Figure 7C. However, as illustrated in Figure 7C, the shape of each tetrahedron does not need to be uniform; typically, device tetrahedra vary in shape and size, while RGB tetrahedra are more uniform in shape and size. In the third step, the device image data is reconstructed and ultimately generates an image file that is provided to the controller, which provides instructions to the device backplane and generates the required voltage to achieve the required color at each pixel.
[0069] During the reconstruction of device image data, the image data can undergo several additional steps to improve the perceived quality of the image when displayed on the device. For example, standard dithering algorithms, such as error diffusion algorithms (where "errors" introduced by printing one pixel in a specific color different from the theoretically required color for that pixel are distributed among adjacent pixels so that an overall correct color perception is produced), can be employed with limited-palette displays. See, for example, Pappas, Thrasyvoulos N. “Model-based halftoning of color images,” IEEE Transactions on Image Processing 6.7 (1997): 1014-1024 (which is incorporated as a whole by reference). Reconstruction can also compensate for device errors such as "blooming," where the electric field formed by the pixel electrode affects a larger area of the electro-optic medium than the area of the pixel electrode itself, so that the optical state of one pixel effectively diffuses into a portion of the area of adjacent pixels.
[0070] In another embodiment, when implementing color mapping, it is assumed that the input color can be represented as a linear combination of multiple primary colors. In the system described herein, this is achieved by gamut mapping the input to the device spatial color gamut by using a linear combination of multiple primary colors (known as a separated cumulative value). Such cumulative values are easily dithered by establishing a device primary threshold. In other words, each color C in the device image can be defined as follows: [ka]
[0071] In the formula, Pi is the color of a given linear i in La*b* space. The partial sum of these weights is the separated cumulative value Λ k It is called (C), and in the formula, it is as follows: [ka]
[0072] In advanced embodiments, a multicolor rendering algorithm is integrated into the color mapping process, as illustrated in Figure 8, and all steps are performed by one or more processors. Such processors are typically built specifically for use with portable (mobile) displays, efficiently distributing the computation steps and saving energy. See, for example, processors from Freescale or Qualcomm. As shown, standard RGB image data im i, j However, the image may first be fed through several cleanup steps, which may include a sharpening filter 602, which may be optional in some embodiments. This sharpening filter 602 may be useful in some cases where the threshold array T(x) or filter is not as sharp as an error diffusion system. This sharpening filter 602 may be a simple finite impulse response (FIR) filter, e.g., 3x3, which can be easily computed. In addition, although not shown in Figure 8, the RGB image data may be resized, for example, from 16 bits to 8 bits, or the actual image may be resized to accommodate the presence of more pixels in the RGB image than are available on the target device.
[0073] Next, the color data may be mapped in the color mapping step 604, as discussed above with respect to Figures 7A-7C, and the color separation may be generated in the separation generation step 606 by a method commonly available in the art, such as a centroid coordinate method, and the color data may be used to index a CSC_LUT lookup table, which may have N entries per index that give the desired separation information in a form that is directly required by a mask-based dithering step (e.g., step 612). In some embodiments, the CSC_LUT lookup table may be constructed by combining both the desired color enhancement and / or gamut mapping and a selected separation algorithm, and is configured to include a mapping between the color values and color separation cumulative values of the input image. In this scheme, the lookup table (e.g., CSC_LUT) may be designed to provide the desired separation cumulative value information quickly and in a form that is directly required by a mask-based dithering step (e.g., step 612 with a quantizer). Finally, the separated cumulative value data 608 is used in conjunction with the threshold array 610 and the quantizer 612 to obtain device image data y i,j This generates multiple colors. The quantizer may be a separate integrated circuit, however, this function is typically incorporated into the processor 50. In some embodiments, the color mapping 604, separation generation 606, and cumulative value 608 steps may be implemented as a single interpolated CSC_LUT lookup table. In this configuration, the separation step is not performed by finding the centroid coordinates in the tetrahedronization of the multiple primary colors, but may be implemented by a lookup table, which allows for greater flexibility. In addition, the output calculated by the method illustrated herein is calculated completely independently of the other outputs. Furthermore, the threshold array T(x) used herein may be a blue noise mask (BNM).
[0074] Figure 9 shows a complete sequence 900 of the conversion from RGB image data, i.e., data contained in a .jpeg, .png, or bitmap file, to an image on an electrophoretic color display. Starting in step 910, the image file is provided as RGB data. The RGB data may be adjusted, resized, smoothed, sharpened, brightened, etc., in step 920. The resulting RGB data is mapped onto the device color space as discussed above with respect to Figures 7A-7C. In practice, the color mapping step is typically performed using a lookup table 935, which maps the RGB data to device data, for example, using a calibrated test pattern and a color optics bench based on existing measurements of device performance. In many cases, the lookup table is dynamic and will change in response to measurements of device performance 933 (battery, front light, frame rate) and environmental data 938 such as temperature. In some embodiments, the device may have non-transient memory for storing a plurality of lookup tables 935 that are indexed with respect to device performance 933 and environmental data 938.
[0075] The resulting device image data 940 may be dithered in step 950, for example, using a centroid coordinate method. The device image data may also undergo error diffusion and blooming compensation. Once the final device image data is transformed, it is stored in memory until it is delivered to the controller 950, which ultimately instructs the gate and source drivers to deliver suitable voltages to the front electrodes and display pixels in order to display the desired image on the device 970.
[0076] Accordingly, the present invention provides a full-color electrophoretic display capable of receiving standard RGB data and displaying it on a color electrophoretic display such as an Advanced Color Electronic Paper (ACeP®) device. While several aspects and embodiments of the present application have been described, it should be understood that various modifications, alterations, and improvements will readily come to mind for those skilled in the art. Such modifications, alterations, and improvements are intended to be within the spirit and scope of the art described herein. For example, those skilled in the art will readily conceive of various other means and / or structures to perform the functions described herein and / or obtain one or more of the results and / or advantages, and such transformations and / or alterations will each be considered within the scope of the embodiments described herein. Those skilled in the art will be able to recognize or confirm many equivalents of the specific embodiments described herein by mere routine experimentation. Therefore, it should be understood that the embodiments described herein are presented only as examples, and embodiments of the present invention may be practiced differently from those specifically described within the scope of the appended claims and their equivalents. In addition, any combination of two or more features, systems, articles, materials, kits, and / or methods described herein is also included within the scope of this disclosure, provided that such features, systems, articles, materials, kits, and / or methods are not inconsistent with each other.
Claims
1. It is a color display, Electrophoretic displays (101, 102), the electrophoretic displays (101, 102) comprising a light-transmitting electrode (110), an active matrix (130) of pixel electrodes, and an electrophoretic medium (120) comprising four types of electrophoretic particles (121, 122, 123, 124), wherein the electrophoretic medium (120) is positioned between the light-transmitting electrode (110) and the active matrix (130) of the pixel electrodes, and the electrophoretic displays (101, 102) are capable of generating eight primary colors at each pixel electrode (130), A non-transient memory (70) for storing a lookup table that maps RGB (red, green, blue) colors to colors generated by the electrophoretic displays (101, 102), A processor (50) coupled to the non-transient memory (70), A controller (60) coupled to the processor (50) and configured to provide electrophoretic display pixel color commands to the active matrix (130) of the pixel electrodes, The processor (50) is equipped with the following steps, namely, For each pixel in the image, RGB image data is received from the non-transient memory (70), Using the lookup table (LUT) stored in the non-transient memory (70), the RGB image data is converted to electrophoretic display image data for each pixel in the image. Assigning a set of cumulative color separation values to the electrophoretic display image data based on a linear combination of primary colors generated by the electrophoretic display (101, 102), wherein the linear combination includes a set of weights assigned to the primary colors, and the set of cumulative color separation values is defined such that, for the k-th weight, the cumulative color separation value is a partial sum of the set of weights from the first weight to the k-th weight. The method involves comparing the set of cumulative color separation values with a threshold array using a quantization function, wherein the quantization function outputs a palette index corresponding to the k-th primary color based on the comparison. For each pixel, the electrophoretic display image data, including the output palette index, is transmitted to the controller (60). A color display configured to perform the following actions.
2. The color display according to claim 1, wherein the lookup table (LUT) incorporates a mapping between tetrahedra that incorporate the black-white axis in the RGB color space and the black-white axis in the electrophoretic display color space.
3. The color display according to claim 1, wherein the threshold array is a blue noise mask (BNM).
4. The color display according to claim 1, wherein the electrophoretic medium (120) is enclosed within a plurality of microcapsules (126) or microcells (127).
5. The color display according to claim 1, wherein the processor (50) is further configured to resize the RGB image data.
6. The color display according to claim 1, further comprising a temperature sensor, wherein the lookup table (LUT) is indexed to temperature.
7. The color display according to claim 1, wherein the active matrix (130) of the pixel electrodes includes thin-film transistors (TFTs) made of metal oxide semiconductors.
8. A method for converting RGB (red, green, blue) image data for use on electrophoretic displays (101, 102) into electrophoretic display image data, wherein the electrophoretic displays (101, 102) comprise four types of electrophoretic particles (121, 122, 123, 124), and the electrophoretic displays (101, 102) are capable of generating eight primary colors at each pixel electrode (130) of the active matrix (130) of the pixel electrodes, and the method is as follows: Receiving RGB image data for each pixel in the image, Using a processor (50), and using a lookup table (LUT) stored in a non-transient memory (70) connected to the processor (50), the RGB image data is converted pixel by pixel into electrophoretic display image data. Assigning a set of cumulative color separation values to the electrophoretic display image data based on a linear combination of primary colors generated by the electrophoretic display (101, 102), wherein the linear combination includes a set of weights assigned to the primary colors, and the set of cumulative color separation values is defined such that, for the k-th weight, the cumulative color separation value is a partial sum of the set of weights from the first weight to the k-th weight. The method involves comparing the set of cumulative color separation values with a threshold array using a quantization function, wherein the quantization function outputs a palette index corresponding to the k-th primary color based on the comparison. For each pixel in the image, the electrophoretic display image data, including the output palette index, is transmitted to a controller (60) coupled to the processor (50). The voltage command is transmitted from the controller (60) to the active matrix (130) of the pixel electrode. Methods that include...
9. The method according to claim 8, wherein the lookup table (LUT) incorporates a mapping between tetrahedra that incorporate the black-white axis in the RGB color space and the black-white axis in the electrophoretic display color space.
10. The method according to claim 8, wherein the threshold array is a blue noise mask (BNM).
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